Institute of Materials Science of Barcelona (ICMAB-CSIC), Campus UAB, Bellaterra, 08193, Spain.
Faculty of Medicine and Health Technology, Tampere University, Arvo Ylpön katu 34, Tampere, 33520, Finland.
Small. 2021 Mar;17(10):e2003937. doi: 10.1002/smll.202003937. Epub 2021 Feb 15.
Limbal stem cells (LSCs) are already used in cell-based treatments for ocular surface disorders. Clinical translation of LSCs-based therapies critically depends on the successful delivery, survival, and retention of these therapeutic cells to the desired region. Such a major bottleneck could be overcome by using an appropriate carrier to provide anchoring sites and structural support to LSC culture and transplantation. Bacterial nanocellulose (BNC) is an appealing, yet unexplored, candidate for this application because of its biocompatibility, animal-free origin and mechanical stability. Here, BNC as a vehicle for human embryonic stem cells-derived LSC (hESC-LSC) are investigated. To enhance cell-biomaterial interactions, a plasma activation followed by a Collagen IV and Laminin coating of the BNC substrates is implemented. This surface functionalization with human extracellular matrix proteins greatly improved the attachment and survival of hESC-LSC without compromising the flexible, robust and semi-transparent nature of the BNC. The surface characteristics of the BNC substrates are described and a preliminary ex vivo test in simulated transplantation scenarios is provided. Importantly, it is shown that hESC-LSC retain their self-renewal and stemness characteristics up to 21 days on BNC substrates. These results open the door for future research on hESC-LSC/BNC constructs to treat severe ocular surface pathologies.
角膜缘干细胞(LSCs)已被用于治疗眼表疾病的细胞疗法。基于 LSCs 的治疗方法的临床转化,关键取决于这些治疗细胞能否成功递送至所需区域,并在该区域存活和驻留。通过使用适当的载体为 LSC 培养和移植提供附着位点和结构支撑,可克服这一重大瓶颈。由于具有生物相容性、无动物来源和机械稳定性,细菌纳米纤维素(BNC)是一种有吸引力但尚未得到探索的候选材料。在此,研究了 BNC 作为人胚胎干细胞衍生的 LSC(hESC-LSC)载体。为了增强细胞-生物材料相互作用,采用等离子体激活,然后对 BNC 基底进行胶原 IV 和层粘连蛋白涂层。这种用人细胞外基质蛋白进行的表面功能化极大地提高了 hESC-LSC 的附着和存活能力,而不会损害 BNC 的柔韧性、坚固性和半透明性。本文描述了 BNC 基底的表面特性,并提供了在模拟移植场景中的初步离体测试结果。重要的是,结果表明 hESC-LSC 在 BNC 基底上可保持其自我更新和干细胞特性长达 21 天。这些结果为未来研究 hESC-LSC/BNC 构建体治疗严重眼表疾病开辟了道路。